Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have done all the code right and stuck with this silly thing: I cannot mange to stop the print when the previous generation is the same as the new...so when the prints pattern is the same as the previous pattern it should stop.

I need to copy the board before calling 'step' and then compare the new and copied boards, and only print if it has changed i need is to create a new variable just like i did board[], then to make a nested loop like the one in print, and inside do newboard[y][x] = board[y][x]

Please help me with this i cannot stop the print it always keep printing. please show me your syntax

void step(int board[][WIDTH], int rows) {
    int x, y;
    int neighbors[HEIGHT][WIDTH];
    for (y = 0; y < rows; y++)
        for (x = 0; x < WIDTH; x++)
            neighbors[y][x] = count_neighbors(board, rows, y, x);
    for (y = 0; y < rows; y++)
        for (x = 0; x < WIDTH; x++)
            if (board[y][x] == 1) { /* Currently alive */
                if (neighbors[y][x] < 2)
                    board[y][x] = 0; /* Death by boredom */
                else if (neighbors[y][x] > 3)
                    board[y][x] = 0; /* Death by overcrowding */
            }
            else { /* Currently empty */
                if (neighbors[y][x] == 3)
                    board[y][x] = 1;
            }
}
share|improve this question
    
Maybe make step look for something changing, and return a boolean that you can use as the condition in your loop. –  sje397 Jan 22 '12 at 11:32
add comment

1 Answer 1

up vote 1 down vote accepted

You just have to track changes. Rather trivial to do and far less work (execution/memory wise) than copying and comparing the whole array:

int step(int board[][WIDTH], int rows) { // now returns a bool
    int x, y; 
    int neighbors[HEIGHT][WIDTH]; 
    int changed = 0; // save changes
    for (y = 0; y < rows; y++) 
        for (x = 0; x < WIDTH; x++) 
            neighbors[y][x] = count_neighbors(board, rows, y, x); 
    for (y = 0; y < rows; y++) 
        for (x = 0; x < WIDTH; x++) 
            if (board[y][x] == 1) { /* Currently alive */ 
                if (neighbors[y][x] < 2) 
                {
                    board[y][x] = 0; /* Death by boredom */ 
                    changed = 1; // change happened
                }
                else if (neighbors[y][x] > 3) 
                {
                    board[y][x] = 0; /* Death by overcrowding */ 
                    changed = 1; // change happened
                }
            } 
            else { /* Currently empty */ 
                if (neighbors[y][x] == 3) 
                {
                    board[y][x] = 1; 
                    changed = 1; // change happened
                }
            } 
    return changed; // return the status (changed yes/no?)
} 

int main(void) {  
    int board[HEIGHT][WIDTH];  
    init(board, HEIGHT);  
    while (1) {  
        print(board, HEIGHT, WIDTH);
        if(step(board, HEIGHT) == 0) // no change
            break; // leave the loop
    }  
    return 0;  
}  

Edit: If wanted, you could as well count the actual changes (instead of just saying yes/no) and return the number of changes. Could would stay almost the same.

share|improve this answer
    
errors on bool step(int board[][WIDTH], int rows) {: Error 2 error C2061: syntax error : identifier 'step' Error 4 error C2059: syntax error : 'type' Error 3 error C2059: syntax error : ';' –  Blondy21 Jan 22 '12 at 12:57
    
Ah, my mistake. Use int as return type. C doesn't know bool after all. –  Mario Jan 22 '12 at 13:12
    
@Mario, sure that C has bool (or _Bool) since C99. –  Jens Gustedt Jan 22 '12 at 13:49
    
Possible, but the classic one hasn't and I wouldn't assume it for now. –  Mario Jan 22 '12 at 14:39
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.